An APU air intake having a foldable intake door, including a frame with airfoil profiles. The frame is turned to an aperture angle (α) with respect to the frame support, and each airfoil profile is turned to a profile angle (βi) with respect to the frame. The aperture angle (α) varies from 0° to 22°, and the profile angles (βi) vary from 0° to 110°. The frame is moved by an actuator and the airfoil profiles are operated by extendable rods and secondary rods each secondary rod having rod supports. A latching mechanism is assembled onto each extendable rod, including a rare earth magnet and either a magnet contact plate or a plate with another magnet.
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1. An auxiliary power unit comprising:
an air intake foldable double door comprising:
a frame;
a frame support;
two airfoil profiles that consist of a front airfoil profile and a rear airfoil profile;
wherein the frame forms an aperture angle (α) with respect to the frame support,
wherein the aperture angle (α) is within a range of 0° to 22°,
wherein the front airfoil profile forms a front profile angle (β1) with respect to the frame,
wherein the front profile angle is within a range of 0° to 80°,
wherein the rear airfoil profile forms a rear profile angle (β2) with respect to the frame, wherein the rear profile angle is within a range of 0° to 110°,
wherein the frame is movable by an actuator, and the front airfoil profile and the rear airfoil profile are operable by extendable rods and fixed length rods, each fixed length rod having supports,
wherein:
the actuator having actuator supports, said actuator comprising a first base element and a second element, the second element being telescopically movable within the first base element;
each extendable rod having an extendable rod support and an extendable rod head, said each extendable rod comprising a first rod-shaped element and a second rod-shaped element, the second rod-shaped element being telescopically movable within the first rod-shaped element;
wherein a latching mechanism is assembled onto each extendable rod, and wherein the latching mechanism comprises:
a rare earth magnet;
a magnet contact plate;
a spring;
a spring retainer;
a plate,
where the rare earth magnet is assembled onto the first rod-shaped element of the extendable rod; and the magnet contact plate, the spring, the spring retainer and the plate are assembled onto the second rod-shaped element of the extendable rod,
wherein the air intake foldable double door is mounted in fluid communication with the auxiliary power unit for controlling an amount of air entering the auxiliary power unit.
2. An auxiliary power unit according to
3. An auxiliary power unit according to
1) a first mode with the air intake foldable double door closed, where the actuator is in the retracted position, the frame is closed, and the two airfoil profiles are closed relative to the frame;
2) a second mode with the air intake foldable double door open, where the actuator is in the extended position, the frame is open, and the two airfoil profiles are open relative to the frame;
3) a third mode with the air intake foldable double door open, where the actuator is in the extended position, the frame is open, the two airfoil profiles are closed relative to the frame.
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The present invention discloses an air intake retractable flap suitable for the auxiliary power unit (APU) of an aircraft, having a frame and profiles. The invention has application within the aeronautic industry.
The auxiliary power unit (APU) of an aircraft is usually designed to work on ground conditions during 99% of its operative time. Notwithstanding, it can be an essential system that should be capable of being operative in flight conditions. It is an object of the present invention to achieve an optimum performance of the air intake during the flight of an aircraft, at the same time as its on ground performance is improved.
The state of the art shows two main APU air intake types: “flush intakes” and “ram intakes”. Flush intake types have air intake door opening inward the aircraft. Ram intake types have air intake door opening outward the aircraft.
Referring to flush intake types, they have an optimum on ground performance, but this performance is partially impaired because they also have a low ramp entrance angle. Unfortunately, even using a low aperture angle, an adequate improvement of the dynamic pressure is not always attained; this situation increases the aerodynamic drag.
Considering ram intake types, they have better in flight performance and provide nearly zero drag in the closed position. Regrettably, ram intake types present on ground drawbacks, because of the aperture angle must be low, around 20° unless a more complex variable aperture system is used. Conversely, suitable angle for the on ground operation, which is around 50°, would generate a very high aerodynamic drag, having a negative impact in both the robustness of the actuator and the overall weight.
Hence, it is desirable to achieve an APU air intake design with optimum performance both when on ground and while in flight configurations, keeping the reliability standards required by air navigation regulations. Therefore, the aim of the invention is to achieve a new APU air intake design, suitable to obtain the best performances at both in flight and on ground configurations, avoiding the previous mentioned drawbacks.
APU air intakes are widely known in the state of the art; the document U.S. 2009/0065297 A1 reveals a dual action inlet door for reducing noise from an APU. Still, the invention disclosed in this document improves the state of the art, optimizing both on ground and in flight APU performance.
In order to achieve the objectives and to solve the aforementioned drawbacks, the invention develops a foldable double door comprising a frame, a frame support and two airfoil profiles, having a front airfoil profile and a rear airfoil profile. The frame opens an aperture angle (α) with respect to the frame support, and each air profile is turned a profile angle (βi) with respect to the frame.
The airfoil profiles have a rectangular planform shape, and the airfoil profiles are fitted into the frame.
The frame aperture angle (α) varies from 0° to 22°, the front profile angle (β1) varies from 0° to 80°, and the rear profile angle (β2) varies from 0° to 110°.
The frame is moved by an actuator, and the airfoil profiles are operated by extendable rods and fixed length rods, each fixed length rod having supports.
The actuator, having supports, comprises a base element and a moving element, the moving element sliding telescopically in and out the base element. Each extendable rod, having a support and a head, comprises a first rod-shaped element and a second rod-shaped element, the second rod-shaped element sliding telescopically in and out the first rod-shaped element. Moreover, a latching mechanism is assembled onto each extendable rod.
The latching mechanism comprises a rare earth magnet, a magnet contact plate, a spring, a spring retainer, and a plate. The rare earth magnet is assembled onto the first rod-shaped element of the extendable rod. The magnet contact plate, the spring, the spring retainer and the plate are assembled onto the second rod-shaped element of the extendable rod.
The air intake foldable double door comprises a two positions actuator, allowing three operational modes selected among:
The present invention will be completely understood on the basis of the description and the drawings hereinafter presented which are shown as preferred embodiment and therefore are not restrictive.
A list of reference designations used in the drawings is given next:
Other references:
A description of the invention based on the aforementioned figures is presented hereinafter.
As it is shown in
The airfoil profiles (103a, 103b) are connected to the frame (102) using airfoil profile supports (120); these supports (120) are linked to the frame (102) through a couple of pinned joints (104). The airfoil profiles (103a, 103b) are turned using these pins (104) which work like rotation axis. Each extendable rod (111) comprises a first rod-shaped element (111a) and a second rod-shaped element (111b); the first rod-shaped element (111a) is linked to the support (110) through a pinned joint, and the second rod-shaped element (111b) connects to the corresponding airfoil profile support (120) through a pinned joint in the extendable rod head (117).
On ground, the extendable rods (111) remain in collapsed mode, operating like fixed length rod. So the movement of the frame (102) provokes, when opening, the rotation of the profile (103a) until its angle (β1); and this rotation, because of the kinematic linkage between both profiles (103a, 103b) through the fixed length rods (118), provokes the rotation of the profile (103b) until its angle (β2). Due to this configuration, air can flow into the APU air intake through the inlet holes (108).
Therefore, the air intake foldable double door (101) on ground operation is the following: when the opening position is required, as it can be seen at
The in flight configuration (
Both intake configurations (on ground/in flight) can easily be reverted and the air intake foldable double door (101) can be closed through the actuator. Therefore (
The APU air intake opening and closing is provided by an actuator. The different types of actuator are well known in the state of the art. When a variable displacement actuator is used, for instance a three position actuator, it is possible to achieve a higher door opening angle when on ground operations are required. At this configuration, a lower in flight flap opening angle is also available. Those actuators are more complex and heavy, presenting a lower reliability since they have an additional signal sensor, a more sophisticated control and they do present more malfunction modes.
The air intake foldable double door (101) disclosed in this document can use a two positions actuator whereby the following three operational modes are attained:
It should be appreciated that the mentioned embodiment is only an example, and it does not intend to limit the applicability, configuration or scope of the invention in any way. It is understood that some changes may be made in the functionality and arrangement of the elements described in the exemplary embodiment. The foregoing detailed description will provide those skilled in the art references for implementing an exemplary embodiment of the invention, without departing from the scope of the invention as set forth in the appended claims.
Garcia Nevado, Javier, Garcia Lopez, Ivan, Hernandez Gonzalez, Octavio
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
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Nov 15 2015 | HERNANDEZ GONZALEZ, OCTAVIO | AIRBUS OPERATIONS, S L | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 037350 | /0327 | |
Dec 02 2015 | GARCIA LOPEZ, IVAN | AIRBUS OPERATIONS, S L | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 037350 | /0327 | |
Dec 17 2015 | GARCIA NEVADO, JAVIER | AIRBUS OPERATIONS, S L | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 037350 | /0327 |
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